Cationic lipid compound
By developing lipid nanoparticle compositions containing deuterated cationic lipids, the problem of insufficient degradation of oligonucleotides in plasma and intracellular delivery capabilities is solved, and effective protection and efficient delivery of mRNA are achieved.
Patent Information
- Application Number
- CN202111030626.3
- Authority / Receiving Office
- CN · China
- Patent Type
- Patents(China)
- Current Assignee / Owner
- Filing Date
- 2021-09-03
- Publication Date
- 2025-06-10
- Estimated Expiration
- 2041-09-03
AI Technical Summary
The prior art faces the problems of degradation of RNA in plasma and insufficient intracellular delivery capabilities when delivering oligonucleotides.
A lipid nanoparticle containing deuterated cationic lipids was developed to form an optimized mRNA lipid nanoparticle composition by combining lipids conjugated with neutral lipids, steroids and polymers, improving RNA stability and intracellular delivery efficiency.
Effective protection of mRNA is achieved, degradation in serum is avoided, and its delivery capability in cells is improved, providing optimized drug delivery effect and good therapeutic index.
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Figure CN115745815B_ABST
Abstract
Description
Technical Field
[0001] The present invention provides cationic lipids which can be used in combination with other lipid components (such as neutral lipids, steroids, and lipid-polymer conjugates) to form a nucleic acid mRNA lipid nanoparticle composition for delivering one or more therapeutic and / or prophylactic agents to mammalian cells or organs and / or for producing polypeptides in mammalian cells or organs. In addition to lipids, the lipid nanoparticle compositions of the present invention may further include one or more cationic and / or ionizable amino lipids, neutral lipids including polyunsaturated lipids, lipid-polymer conjugates, steroids, and / or therapeutic and / or prophylactic agents in specific proportions. Background Art
[0002] The effective targeted delivery of bioactive substances such as small molecule drugs, proteins, and nucleic acids presents a persistent medical challenge. Specifically, delivering nucleic acids to cells is difficult due to the relative instability and low cellular permeability of these species. Thus, there is a need to develop methods and compositions that facilitate the delivery of therapeutic and / or prophylactic agents such as nucleic acids to cells.
[0003] It has been demonstrated that lipid-containing nanoparticle compositions, liposomes, and lipoplexes can be used effectively as delivery vehicles to transport bioactive substances such as small molecule drugs, proteins, and nucleic acids to cells and / or intracellular compartments. These compositions generally include one or more "cationic" lipids, neutral lipids including polyunsaturated lipids (such as phospholipids), structural lipids (such as steroids), and / or lipids containing polyethylene glycol (lipid-polymer conjugates). Cationic lipids include amine-containing lipids that can be readily protonated.
[0004] However, the use of oligonucleotides in a therapeutic setting currently faces two problems. First, free RNA is prone to digestion by nucleases in plasma. Second, the ability of free RNA to enter intracellular compartments where the relevant translation machinery exists is limited. Lipid nanoparticles formed from cationic lipids and other lipid components (such as neutral lipids, cholesterol, PEG, PEGylated lipids, and oligonucleotides) have been used to prevent the degradation of RNA in plasma and to promote the cellular uptake of oligonucleotides.
[0005] There is still a need to improve cationic lipids and lipid nanoparticles for delivering oligonucleotides. The improved lipid nanoparticles would provide optimized drug delivery, protect nucleic acids from degradation and clearance in serum, be suitable for systemic or local delivery, and provide intracellular delivery of nucleic acids. Additionally, these preferred lipid-nucleic acid particles should be well-tolerated and provide a sufficient therapeutic index such that patient treatment with an effective dose of nucleic acid does not result in unacceptable toxicity and / or risk to the patient. The present invention provides these and related advantages. Summary of the Invention
[0006] The present invention provides the following compounds and methods related to these compounds:
[0007] In a first aspect, the present invention relates to compounds of the following structural formula (I):
[0008]
[0009] or their N-oxides, or their salts or isomers.
[0010] wherein R in structural formula “I” 1 , R 2 and R 3 are all combinations of two independent “hydrogen” isotopes (including isotopes “protium” and “deuterium”), specifically, R 1 is a combination of “HH”, “HD” and “DD”; R 2 and R 3 are combinations of “HHH”, “HHD”, “HDD” and “DDD”;
[0011] R 1 , R 2 and R 3 are all independent, but the isotopes “protium” and “deuterium” in R 1 , R 2 and R 3 cannot be “H” at the same time, that is, combinations containing at least one “D”. Specifically, the combination situations are divided into 5 cases, including combinations containing 1 “D”, combinations containing 2 “D”, combinations containing 3 “D”, combinations containing 4 “D” and combinations containing 5 “D”.
[0012] In various different embodiments, the compound has one of the structures shown in Table 1 below
[0013] Table 1 Representative Compounds
[0014]
[0015]
[0016]
[0017]
[0018] In some embodiments, a composition is provided that comprises any one or more of the compounds of structural formula (I) and a therapeutic agent and / or a prophylactic agent.
[0019] In some embodiments, there are provided compositions comprising any one or more of the compounds of structure (I) and a therapeutic and / or prophylactic agent. In some embodiments, the composition comprises any one of the compounds of structure (I) and a therapeutic and / or prophylactic agent and one or more excipients selected from neutral lipids, steroids, and polymer-conjugated lipids. Other pharmaceutically acceptable excipients and / or carriers are also included within the various embodiments of the composition.
[0020] In some embodiments, the neutral lipid is selected from one or more of 1,2-distearoyl-sn-glycero-3-phosphocholine (DSPC), 1,2-dipalmitoyl-sn-glycero-3-phosphocholine (DPPC), 1,2-dimyristoyl-sn-glycero-phosphocholine (DMPC), 1,2-dioleoyl-sn-glycero-3-phosphocholine (DOPC), 1-palmitoyl-2-oleoyl-sn-glycero-3-phosphocholine (POPC), 1,2-dioleoyl-sn-glycero-3-phosphoethanolamine (DOPE), and sphingomyelin (SM). In some embodiments, the preferred neutral lipid is 1,2-distearoyl-sn-glycero-3-phosphocholine (DSPC).
[0021] In some embodiments, the steroid is selected from one or more of cholesterol, coprosterol, sitosterol, ergosterol, campesterol, stigmasterol, brassicasterol, tomatidine, ursolic acid, and α-tocopherol. In some embodiments, the preferred steroid is cholesterol.
[0022] In some embodiments, the polyethylene glycolylated lipid is 1,2-dimyristoyl-sn-glycero methoxypolyethylene glycol (PEG-DMG)
[0023] In some embodiments, the composition is in the following proportion ranges: about 10 to 60 mol% of the compound, about 0 to 30 mol% of neutral lipid, about 10 to 55 mol% of steroid, and about 0 to 10 mol% of polymer-conjugated lipid.
[0024] In some embodiments of the foregoing composition, the therapeutic and / or prophylactic agent comprises a nucleic acid. Wherein the nucleic acid is RNA, which is selected from the group consisting of siRNA, aiRNA, miRNA, dsRNA, shRNA, mRNA, and mixtures thereof. In some embodiments, the RNA is selected from mRNA.
[0025] In other different embodiments, the present invention relates to a method of using a therapeutic and / or prophylactic agent in a subject in need thereof, the method comprising preparing or providing any one of the above compositions and administering the composition to the subject.
[0026] For use purposes, the compounds of the present invention can be used as the active pharmaceutical ingredient, or can be formulated into pharmaceutical compositions (usually in the form of lipid nanoparticles combined with therapeutic and / or prophylactic agents). The pharmaceutical compositions of the present invention comprise a compound of structure (I) and one or more pharmaceutically acceptable carriers, diluents or excipients. The compound of structure (I) is effective in forming lipid nanoparticles and delivering therapeutic and / or prophylactic agents. Those skilled in the art can easily determine the appropriate concentration and dosage.
[0027] The use of the compositions of the present invention can be carried out by any acceptable use mode of reagents for similar utilities. The pharmaceutical compositions of the present invention can be formulated into preparations in solid, semi-solid, liquid or gaseous forms, such as tablets, capsules, powders, granules, ointments, solutions, suspensions, suppositories, injections, inhalants, gels, microspheres and aerosols. Typical routes of using such pharmaceutical compositions include, but are not limited to, oral, topical, transdermal, inhalation, parenteral, sublingual, buccal, rectal, vaginal and intranasal routes. The term parenteral as used herein includes subcutaneous injection, intravenous, intramuscular, intradermal, intrasternal injection or infusion techniques. The pharmaceutical compositions of the present invention are formulated to make the active ingredients therein bioavailable in a subject. The form of the composition to be used for an object or patient can be one or more dosage forms, wherein the tablet can be a single-dose unit, and the container of the compound in the form of an aerosol of the present invention can contain multiple dose units. The current methods for preparing these dosage forms are known or will be obvious to those skilled in the art. In any case, the composition to be used will contain a therapeutically effective amount of the compound of the present invention or a pharmaceutically acceptable salt thereof to treat related diseases or conditions according to the teachings of the present invention.
[0028] The pharmaceutical compositions of the present invention can be in solid or liquid form. In one aspect, the carrier can be particulate, such that the composition is in the form of a tablet or powder. The carrier can also be liquid, in which case the composition is an oral syrup or an injectable liquid or an aerosol suitable for inhalation use.
[0029] When to be used for oral use, the pharmaceutical composition is preferably in solid or liquid form, where the solid or liquid form herein is considered to include semi-solid, semi-liquid, suspension and gel.
[0030] As a solid composition for oral use, the pharmaceutical composition can be formulated into forms such as powders, granules, tablets, pills, capsules, chewing gums, wafers, etc. Such solid compositions generally will contain one or more inert diluents or edible carriers. Additionally, one or more of the following can be present: binders, such as gelatin, cellulose, etc.; excipients, such as lactose, etc.; disintegrants, such as alginic acid, etc.; lubricants, such as magnesium stearate, etc.; glidants, such as silica gel, etc.; sweeteners, such as sucrose or saccharin; flavoring agents, such as mint, etc.; and coloring agents.
[0031] When the pharmaceutical composition is in the form of a capsule, it may contain a liquid carrier other than the above-mentioned types of materials, such as polyethylene glycol or oil.
[0032] The pharmaceutical composition can be in liquid form, such as syrup, solution, emulsion or suspension. As two examples, the liquid can be used for oral use or for injectable delivery. When intended for oral use, the preferred compositions contain one or more of sweeteners, preservatives, coloring agents, and flavoring agents in addition to the compounds of the present invention. In compositions for use by injection, one or more of surfactants, preservatives, wetting agents, dispersing agents, suspending agents, buffering agents, stabilizing agents, and isotonic agents can be included.
[0033] The liquid pharmaceutical compositions of the present invention, whether in solution, suspension or other similar forms, can include one or more of the following excipients: sterile diluents such as water for injection, saline solutions, preferably physiological saline, Ringer's solution, isotonic sodium chloride; non-volatile oils such as synthetic monoglycerides or diglycerides that can be used as solvents or suspending media, polyethylene glycol, glycerol, propylene glycol or other solvents; antibacterial agents such as methylparaben, etc.; antioxidants such as ascorbic acid or sodium bisulfite; chelating agents such as ethylenediaminetetraacetic acid; buffering agents such as acetate, citrate or phosphate; and reagents for adjusting tonicity such as sodium chloride or glucose; reagents used as cryoprotectants such as sucrose or trehalose. Parenteral preparations can be enclosed in ampoules, disposable syringes or multi-dose bottles made of glass or plastic. Physiological saline is the preferred adjuvant. Injectable pharmaceutical compositions are preferably sterile.
[0034] The pharmaceutical compositions of the present invention can be used for topical use, in which case the carrier can suitably comprise a solution matrix, an emulsion matrix, an ointment matrix or a gel matrix. The matrix can comprise one or more of the following: petrolatum, lanolin, polyethylene glycol, beeswax, mineral oil, diluents such as water and alcohol, and emulsifying and stabilizing agents. Thickeners can be present in the pharmaceutical compositions for topical use. If intended for transdermal use, the composition can include a transdermal patch or an iontophoresis device.
[0035] The pharmaceutical compositions of the present invention can include various materials that modify the physical form of the solid or liquid dosage forms. The composition can include materials that form a coating shell around the active ingredient. The materials forming the coating shell are generally inert and can be sugars, shellac and other enteric coating reagents. Alternatively, the active ingredient can be encapsulated in a gelatin capsule.
[0036] The pharmaceutical compositions in solid or liquid form of the present invention can include carriers that bind to the compounds of the present invention and facilitate the delivery of the compounds. Such carriers include monoclonal or polyclonal antibodies or proteins.
[0037] The pharmaceutical composition of the present invention may consist of a formulation that can be used as an aerosol. The term "aerosol" refers to a system having colloidal properties and a system consisting of a pressurized package. It can be delivered by liquefied gas or compressed gas, or by a suitable pump system for dispersing the active ingredient. The aerosol of the compound of the present invention can be delivered in a single-phase, two-phase system or a three-phase system for delivering the active ingredient. The delivery of the aerosol includes necessary containers, activators, valves, sub-containers, etc., which together can form a drug delivery device. A person skilled in the art can determine the preferred aerosol without additional experiments.
[0038] The pharmaceutical composition of the present invention can be prepared by methods well known in the pharmaceutical field. The pharmaceutical composition for injection can be prepared by combining the lipid nanoparticles of the present invention with sterile distilled water or other carriers into a solution. A surfactant can be added to promote the formation of a uniform solution or suspension. The surfactant interacts non-covalently with the compound of the present invention, thereby promoting the dissolution or uniform suspension of the compound in a water-soluble medium.
[0039] The composition of the present invention or its pharmaceutically acceptable salts are used in a therapeutically effective amount, and this amount will vary according to various factors, including the activity of the specific therapeutic agent used; the metabolic stability and duration of action of the therapeutic agent; the age, weight, general health, gender and diet of the subject; the mode and time of use; the excretion rate; drug combinations; the severity of the specific case, etc.
[0040] The composition of the present invention can also be used simultaneously with, before or after using one or more other therapeutic agents. Such therapeutic combinations include preparations using the composition of the present invention alone and combinations using the composition of the present invention and one or more other active ingredients. For example, the composition of the present invention and other active ingredients can be used together in a single oral dosage form (such as a tablet or capsule) for a subject, or each active ingredient can be used in different oral dosage forms. When using different dosage forms, the compound of the present invention and one or more additional active ingredients can be used at the same time, or used sequentially at staggered times; it should be understood that combination therapy includes all of these dosing regimens.
[0041] The structural modification and design of the above-mentioned deuterated cationic lipid compounds have achieved more advantageous physicochemical properties, including more suitable pKa and better chemical stability, for mRNA nanoliposome compositions, which can achieve more effective binding and delivery of ionic nucleic acid drugs. At the same time, its chemical structure is more stable, facilitating synthesis and being favorable for development as a pharmaceutical excipient.
[0042] The preparation methods of the above-mentioned compounds and compositions are described below and / or are known in the art.
[0043] Those skilled in the art will recognize that in the methods described herein, the functional groups of the intermediate compounds may need to be protected by suitable protecting groups. Such functional groups include hydroxyl, amino, and carboxylic acid. Suitable protecting groups for hydroxyl include trialkylsilyl or diarylalkylsilyl, tetrahydrofuranyl, benzyl, etc. Suitable protecting groups for amino include tert-butoxycarbonyl, benzyloxycarbonyl, etc. Suitable protecting groups for carboxylic acid include hydroxyl, aryl or aralkyl esters. Protecting groups can be added or removed according to standard techniques, which are known to those skilled in the art and described herein.
[0044] Those skilled in the art will also recognize that although such protected derivatives of the compounds of the present invention may not thereby have pharmaceutical activity, they can be administered to mammals and then metabolized in vivo to form the pharmaceutically active compounds of the present invention. Such derivatives can therefore be described as "prodrugs". Prodrugs of the compounds of the present invention are thus included within the scope of the present invention.
[0045] In addition, all compounds of the present invention in the form of free bases or free acids can be converted into their pharmaceutically acceptable salts by treatment with appropriate inorganic or organic bases or acids according to methods known to those skilled in the art. The salts of the compounds of the present invention can be converted into their free base or acid forms by standard techniques.
[0046] The following examples are provided for purposes of illustration and not limitation.
[0047] In the following examples, unless otherwise indicated, all solvents and reagents used are commercially available and used as received.
[0048] The procedures described below can be used to synthesize Compound I in Table 1.
[0049] The following abbreviations are used herein:
[0050] Detailed Description
[0051] Example 1:
[0052] Representative Route
[0053] Synthesis of Compound 3
[0054]
[0055] 1) Synthesis of Compound 3
[0056]
[0057] Chemical formula: C 41 H 75 D 2NO 2
[0058] Molecular weight: 618.08
[0059] To a mixture of 3-(dimethylamino)-1,2-propanediol-3,3-d 2 (0.71 g, 6.0 mmol) in anhydrous DMF (7.1 mL, 10.0 vol) was added 60% sodium hydride (1.6 g, 24.0 mmol), and the mixture was stirred under nitrogen protection for 0.5 h. 1-Methylsulfonyllinoleylene (5.0 g, 15 mmol) was added to the mixture, and the system was heated to the reflux temperature and reacted for 24 h. Then, the reaction mixture was cooled in an ice bath and quenched by slowly adding an appropriate amount of ethanol. After dilution with 150 mL of ethyl acetate, the mixture was washed with brine (150 mL). The layers were allowed to separate, and the organic phase was dried over magnesium sulfate and concentrated under reduced pressure to remove the solvent. The obtained residue was purified by silica gel column chromatography (100% - 30% dichloromethane / methanol). Compound 3 (2.4 g, 65%) was obtained.
[0060] C 41 H 75 D 2 NO 2 , Ms m / z: [M+H + 618.6; 1H-NMR (300 MHz): δ 5.4 - 5.27 (m, 8H), 3.65 - 3.35 (m, 7H), 2.80 - 2.70 (d, 4H), 2.26 (s, 6H), 2.25 - 2.16 (m, 8H,), 1.50 - 1.41 (m, 8H), 1.40 - 1.28 (m, 28H), 0.88 (t, 6H).
[0061] Example 2:
[0062] Synthesis of Compound 1
[0063]
[0064] Chemical formula: C 43 H 78 DNO 2
[0065] Molecular weight: 617.07
[0066] Compound 1 can be synthesized according to the representative route described in Example 1.
[0067] C 43 H 78 DNO 2 , Ms m / z: [M+H + 617.6;1 H-NMR (300 MHz): δ 5.4 - 5.27 (m, 8H), 3.65 - 3.35 (m, 7H), 2.80~2.70 (d, 5H), 2.26 (s, 6H), 2.25 - 2.16 (m, 8H,), 1.50 - 1.41 (m, 8H), 1.40 - 1.28 (m, 28H), 0.88 (t, 6H).
[0068] Example 3:
[0069] Synthesis of Compound 2
[0070]
[0071] Chemical formula: C 43 H 78 DNO 2
[0072] Molecular weight: 618.08
[0073] Compound 2 can be synthesized according to the representative route described in Example 1.
[0074] C 43 H 78 DNO 2 , Ms m / z: [M + H + 618.6; 1 H-NMR (300 MHz): δ 5.4 - 5.27 (m, 8H), 3.65 - 3.35 (m, 7H), 2.81~2.71 (d, 6H), 2.27 (s, 5H), 2.26 - 2.16 (m, 8H,), 1.50 - 1.41 (m, 8H), 1.40 - 1.28 (m, 28H), 0.88 (t, 6H).
[0075] Example 4:
[0076] Synthesis of Compound 4
[0077]
[0078] Chemical formula: C 43 H 77 D 2 NO 2
[0079] Molecular weight: 618.08
[0080] Compound 4 can be synthesized according to the representative route described in Example 1.
[0081] C 43 H 77 D 2 NO2 , Ms m / z: [M+H + 618.6; 1 H-NMR (300 MHz): δ 5.4 - 5.27 (m, 8H), 3.65 - 3.35 (m, 7H), 2.81~2.71 (d, 5H), 2.27 (s, 5H), 2.26 - 2.16 (m, 8H,), 1.50 - 1.41 (m, 8H), 1.40 - 1.28 (m, 28H), 0.88 (t, 6H).
[0082] Example 5:
[0083] Synthesis of Compound 5
[0084]
[0085] Chemical formula: C 43 H 77 D 2 NO 2
[0086] Molecular weight: 618.08
[0087] Compound 5 can be synthesized according to the representative route described in Example 1.
[0088] C 43 H 77 D 2 NO 2 , Ms m / z: [M+H + 618.6; 1 H-NMR (300 MHz): δ 5.4 - 5.27 (m, 8H), 3.65 - 3.35 (m, 7H), 2.81~2.71 (d, 6H), 2.27 (s, 4H), 2.26 - 2.16 (m, 8H,), 1.50 - 1.41 (m, 8H), 1.40 - 1.28 (m, 28H), 0.88 (t, 6H).
[0089] Example 6:
[0090] Synthesis of Compound 6
[0091]
[0092] Chemical formula: C 43 H 76 D 3 NO 2
[0093] Molecular weight: 619.09
[0094] Compound 6 can be synthesized according to the representative route described in Example 1.
[0095] C 43 H 76 D 3 NO 2 , Ms m / z: [M+H + 619.6; 1 H-NMR (300 MHz): δ 5.4 - 5.27 (m, 8H), 3.65 - 3.35 (m, 7H), 2.80~2.70 (d, 4H), 2.26 (s, 5H), 2.25 - 2.16 (m, 8H,), 1.50 - 1.41 (m, 8H), 1.40 - 1.28 (m, 28H), 0.88 (t, 6H).
[0096] Example 7:
[0097] Synthesis of Compound 7
[0098]
[0099] Chemical formula: C 43 H 76 D 3 NO 2
[0100] Molecular weight: 619.09
[0101] Compound 7 can be synthesized according to the representative route described in Example 1.
[0102] C 43 H 76 D 3 NO 2 , Ms m / z: [M+H + 619.6; 1 H-NMR (300 MHz): δ 5.4 - 5.27 (m, 8H), 3.65 - 3.35 (m, 7H), 2.80~2.70 (d, 5H), 2.26 (s, 4H), 2.25 - 2.16 (m, 8H,), 1.50 - 1.41 (m, 8H), 1.40 - 1.28 (m, 28H), 0.88 (t, 6H).
[0103] Example 8:
[0104] Synthesis of Compound 8
[0105]
[0106] Chemical formula: C 43 H 76 D 3 NO 2
[0107] Molecular weight: 619.09
[0108] Compound 8 can be synthesized according to the representative route described in Example 1.
[0109] C 43 H 76 D 3 NO 2 , Ms m / z: [M+H + 619.6; 1 H-NMR (300 MHz): δ 5.4 - 5.27 (m, 8H), 3.65 - 3.35 (m, 7H), 2.80~2.70 (d, 5H), 2.26 (s, 4H), 2.25 - 2.16 (m, 8H,), 1.50 - 1.41 (m, 8H), 1.40 - 1.28 (m, 28H), 0.88 (t, 6H).
[0110] Example 9:
[0111] Synthesis of Compound 9
[0112]
[0113] Chemical formula: C 43 H 76 D 3 NO 2
[0114] Molecular weight: 619.10
[0115] Compound 9 can be synthesized according to the representative route described in Example 1.
[0116] C 43 H 76 D 3 NO 2 , Ms m / z: [M+H + 619.6; 1 H-NMR (300 MHz): δ 5.4 - 5.27 (m, 8H), 3.65 - 3.35 (m, 7H), 2.80~2.70 (d, 6H), 2.26 (s, 3H), 2.25 - 2.16 (m, 8H,), 1.50 - 1.41 (m, 8H), 1.40 - 1.28 (m, 28H), 0.88 (t, 6H).
[0117] Example 10:
[0118] Synthesis of Compound 10
[0119]
[0120] Chemical formula: C 43 H 76 D 3 NO 2
[0121] Molecular weight: 619.12
[0122] Compound 10 can be synthesized according to the representative route described in Example 1.
[0123] C 43 H 76 D 3 NO 2 , Ms m / z: [M+H + 619.6; 1 H-NMR (300 MHz): δ 5.4 - 5.27 (m, 8H), 3.65 - 3.35 (m, 7H), 2.80~2.70 (d, 4H), 2.26 (s, 4H), 2.24 - 2.16 (m, 8H,), 1.50 - 1.41 (m, 8H), 1.40 - 1.28 (m, 28H), 0.88 (t, 6H).
[0124] Example 11:
[0125] Synthesis of Compound 11
[0126]
[0127] Chemical formula: C 43 H 75 D 4 NO 2 ,
[0128] Molecular weight: 620.10
[0129] Compound 11 can be synthesized according to the representative route described in Example 1.
[0130] C 43 H 75 D 4 NO 2 , Ms m / z: [M+H + 620.6; 1 H-NMR (300 MHz): δ 5.4 - 5.27 (m, 8H), 3.65 - 3.35 (m, 7H), 2.80~2.70 (d, 4H), 2.26 (s, 4H), 2.24 - 2.16 (m, 8H,), 1.50 - 1.41 (m, 8H), 1.40 - 1.28 (m, 28H), 0.88 (t, 6H).
[0131] Example 12:
[0132] Synthesis of Compound 12
[0133]
[0134] Chemical formula: C 43 H 75 D 4 NO 2 ,
[0135] Molecular weight: 620.10
[0136] Compound 11 can be synthesized according to the representative route described in Example 1.
[0137] C 43 H 75 D 4 NO 2 , Ms m / z: [M+H + 620.6; 1 H-NMR (300 MHz): δ 5.4 - 5.27 (m, 8H), 3.65 - 3.35 (m, 7H), 2.80~2.70 (d, 5H), 2.26 (s, 3H), 2.24 - 2.16 (m, 8H,), 1.50 - 1.41 (m, 8H), 1.40 - 1.28 (m, 28H), 0.88 (t, 6H).
[0138] Example 13:
[0139] Synthesis of Compound 13
[0140]
[0141] Chemical formula: C 43 H 75 D 4 NO 2 ,
[0142] Molecular weight: 620.10
[0143] Compound 11 can be synthesized according to the representative route described in Example 1.
[0144] C 43 H 75 D 4 NO 2 , Ms m / z: [M+H + 620.6; 1H-NMR(300MHz): δ 5.4 - 5.27 (m, 8H), 3.65 - 3.35 (m, 7H), 2.80~2.70 (d, 6H), 2.26 (s, 2H), 2.24 - 2.16 (m, 8H,), 1.50 - 1.41 (m, 8H), 1.40 - 1.28 (m, 28H), 0.88 (t, 6H).
[0145] Example 14:
[0146] Synthesis of Compound 14
[0147]
[0148] Chemical formula: C 43 H 75 D 4 NO 2 ,
[0149] Molecular weight: 620.10
[0150] Compound 14 can be synthesized according to the representative route described in Example 1.
[0151] C 43 H 75 D 4 NO 2 , Ms m / z: [M + H + 620.6; 1 H-NMR(300MHz): δ 5.4 - 5.27 (m, 8H), 3.65 - 3.35 (m, 7H), 2.80~2.70 (d, 5H), 2.26 (s, 3H), 2.24 - 2.16 (m, 8H,), 1.50 - 1.41 (m, 8H), 1.40 - 1.28 (m, 28H), 0.88 (t, 6H).
[0152] Example 15:
[0153] Synthesis of Compound 15
[0154]
[0155] Chemical formula: C 43 H 75 D 4 NO 2 ,
[0156] Molecular weight: 620.10
[0157] Compound 15 can be synthesized according to the representative route described in Example 1.
[0158] C 43 H75 D 4 NO 2 ,Ms m / z: [M+H + 620.6; 1 H-NMR(300MHz): δ5.4 - 5.27(m, 8H), 3.65 - 3.35(m, 7H), 2.80~2.70(d, 6H), 2.26(s, 2H), 2.24 - 2.16(m, 8H,), 1.50 - 1.41(m, 8H), 1.40 - 1.28(m, 28H), 0.88(t, 6H).
[0159] Example 16:
[0160] Synthesis of Compound 16
[0161]
[0162] Chemical formula: C 43 H 74 D 5 NO 2
[0163] Molecular weight: 621.10
[0164] Compound 16 can be synthesized according to the representative route described in Example 1.
[0165] C 43 H 74 D 5 NO 2 ,Ms m / z: [M+H + 621.6; 1 H-NMR(300MHz): δ5.4 - 5.27(m, 8H), 3.65 - 3.35(m, 7H), 2.80~2.70(d, 4H), 2.26(s, 3H), 2.24 - 2.16(m, 8H,), 1.50 - 1.41(m, 8H), 1.40 - 1.28(m, 28H), 0.88(t, 6H).
[0166] Example 17:
[0167] Synthesis of Compound 17
[0168]
[0169] Chemical formula: C 43 H 74 D 5 NO 2
[0170] Molecular weight: 621.10
[0171] Compound 17 can be synthesized according to the representative route described in Example 1.
[0172] C 43 H 74 D 5 NO 2 , Ms m / z: [M+H + 621.6; 1 H-NMR (300 MHz): δ 5.4 - 5.27 (m, 8H), 3.65 - 3.35 (m, 7H), 2.80~2.70 (d, 4H), 2.27 (s, 3H), 2.26 - 2.16 (m, 8H,), 1.50 - 1.41 (m, 8H), 1.40 - 1.28 (m, 28H), 0.88 (t, 6H).
[0173] Example 18:
[0174] Synthesis of Compound 18
[0175]
[0176] Chemical formula: C 43 H 74 D 5 NO 2
[0177] Molecular weight: 621.10
[0178] Compound 18 can be synthesized according to the representative route described in Example 1.
[0179] C 43 H 74 D 5 NO 2 , Ms m / z: [M+H + 621.6; 1 H-NMR (300 MHz): δ 5.4 - 5.27 (m, 8H), 3.65 - 3.35 (m, 7H), 2.80~2.70 (d, 5H), 2.27 (s, 2H), 2.26 - 2.16 (m, 8H,), 1.50 - 1.41 (m, 8H), 1.40 - 1.28 (m, 28H), 0.88 (t, 6H).
[0180] Example 19:
[0181] Synthesis of Compound 19
[0182]
[0183] Chemical formula: C 43 H 74 D5 NO 2
[0184] Molecular weight: 621.10
[0185] Compound 19 can be synthesized according to the representative route described in Example 1.
[0186] C 43 H 74 D 5 NO 2 , Ms m / z: [M+H + 621.6; 1 H-NMR (300 MHz): δ 5.4 - 5.27 (m, 8H), 3.65 - 3.35 (m, 7H), 2.80~2.70 (d, 5H), 2.27 (s, 2H), 2.26 - 2.16 (m, 8H,), 1.50 - 1.41 (m, 8H), 1.40 - 1.28 (m, 28H), 0.88 (t, 6H).
[0187] Example 20:
[0188] Synthesis of Compound 20
[0189]
[0190] Chemical formula: C 43 H 74 D 5 NO 2
[0191] Molecular weight: 621.10
[0192] Compound 20 can be synthesized according to the representative route described in Example 1.
[0193] C 43 H 74 D 5 NO 2 , Ms m / z: [M+H + 621.6; 1 H-NMR (300 MHz): δ 5.4 - 5.27 (m, 8H), 3.65 - 3.35 (m, 7H), 2.80~2.70 (d, 6H), 2.26 (s, 1H), 2.24 - 2.16 (m, 8H,), 1.50 - 1.41 (m, 8H), 1.40 - 1.28 (m, 28H), 0.88 (t, 6H).
[0194] Example 21:
[0195] Synthesis of Compound 21
[0196]
[0197] Chemical formula: C 43 H 73 D 6 NO 2
[0198] Molecular weight: 622.11
[0199] Compound 21 can be synthesized according to the representative route described in Example 1.
[0200] C 43 H 73 D 6 NO 2 , Ms m / z: [M+H + 622.6; 1 H-NMR (300 MHz): δ 5.4 - 5.27 (m, 8H), 3.65 - 3.35 (m, 7H), 2.80~2.70 (d, 4H), 2.26 (s, 2H), 2.24 - 2.16 (m, 8H,), 1.50 - 1.41 (m, 8H), 1.40 - 1.28 (m, 28H), 0.88 (t, 6H).
[0201] Example 22:
[0202] Synthesis of Compound 22
[0203]
[0204] Chemical formula: C 43 H 73 D 6 NO 2
[0205] Molecular weight: 622.11
[0206] Compound 22 can be synthesized according to the representative route described in Example 1.
[0207] C 43 H 73 D 6 NO 2 , Ms m / z: [M+H + 622.6; 1 H-NMR (300 MHz): δ 5.4 - 5.27 (m, 8H), 3.65 - 3.35 (m, 7H), 2.80~2.70 (d, 5H), 2.26 (s, 1H), 2.24 - 2.16 (m, 8H,), 1.50 - 1.41 (m, 8H), 1.40 - 1.28 (m, 28H), 0.88 (t, 6H).
[0208] Example 23:
[0209] Synthesis of Compound 23
[0210]
[0211] Chemical formula: C 43 H 73 D 6 NO 2
[0212] Molecular weight: 622.11
[0213] Compound 23 can be synthesized according to the representative route described in Example 1.
[0214] C 43 H 73 D 6 NO 2 , Ms m / z: [M+H + 622.6; 1 H-NMR (300 MHz): δ 5.4 - 5.27 (m, 8H), 3.65 - 3.35 (m, 7H), 2.80~2.70 (d, 6H), 2.26 - 2.16 (m, 8H,), 1.50 - 1.41 (m, 8H), 1.40 - 1.28 (m, 28H), 0.88 (t, 6H).
[0215] Example 24:
[0216] Synthesis of Compound 24
[0217]
[0218] Chemical formula: C 43 H 72 D 7 NO 2
[0219] Molecular weight: 623.12
[0220] Compound 24 can be synthesized according to the representative route described in Example 1.
[0221] C 43 H 72 D 7 NO 2 , Ms m / z: [M+H + 623.6; 1H-NMR(300 MHz): δ 5.4 - 5.27 (m, 8H), 3.65 - 3.35 (m, 7H), 2.80~2.70 (d, 4H), 2.26 (s, 1H), 2.24 - 2.16 (m, 8H,), 1.50 - 1.41 (m, 8H), 1.40 - 1.28 (m, 28H), 0.88 (t, 6H).
[0222] Example 25:
[0223] Synthesis of Compound 25
[0224]
[0225] Chemical formula: C 43 H 72 D 7 NO 2
[0226] Molecular weight: 623.12
[0227] Compound 25 can be synthesized according to the representative route described in Example 1.
[0228] C 43 H 72 D 7 NO 2 , Ms m / z: [M + H + 623.6; 1 H-NMR(300 MHz): δ 5.4 - 5.27 (m, 8H), 3.65 - 3.35 (m, 7H), 2.80~2.70 (d, 5H), 2.26 - 2.16 (m, 8H,), 1.50 - 1.41 (m, 8H), 1.40 - 1.28 (m, 28H), 0.88 (t, 6H).
[0229] Example 26:
[0230] Synthesis of Compound 26
[0231]
[0232] Chemical formula: C 43 H 71 D 8 NO 2
[0233] Molecular weight: 624.13
[0234] Compound 26 can be synthesized according to the representative route described in Example 1.
[0235] C 43 H 71 D8 NO 2 , Ms m / z: [M+H + 624.6; 1 H-NMR (300 MHz): δ 5.4 - 5.27 (m, 8H), 3.65 - 3.35 (m, 7H), 2.80~2.70 (d, 4H), 2.26 - 2.16 (m, 8H,), 1.50 - 1.41 (m, 8H), 1.40 - 1.28 (m, 28H), 0.88 (t, 6H).
[0236] Example 27
[0237] In vivo evaluation of luciferase mRNA using lipid nanoparticle compositions
[0238] The cationic lipid, DSPC, cholesterol, and PEG-lipid were dissolved in ethanol at a molar ratio of 50:10:38:2 or 48:10:40:2. Lipid nanoparticles (LNPs) were prepared at a total lipid to mRNA weight ratio of approximately 10:1 to 30:1. Briefly, the mRNA was diluted to 0.15 mg / mL in 10 mL to 50 mL of citrate buffer (pH = 4.0). Using a syringe pump, the ethanol solution of the lipid was mixed with the aqueous mRNA solution at a ratio of approximately 1:5 to 1:3 (volume / volume) with a total flow rate of more than 10 mL / min. Then the ethanol was removed and the external buffer was replaced with PBS by dialysis. Finally, the lipid nanoparticles were filtered through a sterile filter with a pore size of 0.2 μm. The particle size of the lipid nanoparticles determined by quasi-elastic light scattering using a Malvern Zetasizer Nano ZS was approximately 65 - 105 nm in diameter, and in some cases, approximately 75 - 100 nm in diameter.
[0239] Studies were conducted on female C57BL / 6 mice at 6 - 8 weeks of age and CD-1 mice at 8 - 10 weeks of age according to the guidelines established by the National Science and Technology Council. Different doses of mRNA lipid nanoparticles were administered systemically via tail vein injection, and the animals were euthanized at specific time points (e.g., 5 hours) after administration. The liver and spleen were collected in pre-weighed tubes, the weights were determined, and they were immediately snap-frozen in liquid nitrogen and stored at -80 °C until used for analysis.
[0240] For the liver, approximately 50 mg was cut for analysis in a 2 mL FastPrep tube (MP Biomedicals, Solon OH). A 1 / 4" ceramic bead (MP Biomedicals) was added to each tube, and 500 μL of Glo lysis buffer - GLB (Promega, Madison WI) equilibrated to room temperature was added to the liver tissue. The liver tissue was homogenized using a FastPrep24 instrument (MP Biomedicals) at 2 × 6.0 m / s for 15 seconds. The homogenate was incubated at room temperature for 5 minutes, then diluted 1:4 in GLB and evaluated using the SteadyGlo luciferase assay system (Promega). Specifically, 50 μL of the diluted tissue homogenate was reacted with 50 μL of the SteadyGlo substrate, shaken for 10 seconds, then incubated for 5 minutes, and then quantified using a SpectraMAX_L chemiluminescent microplate reader (Molecular Devices (Shanghai) Co., Ltd.). The amount of protein assayed was determined by using a BCA protein quantification kit (Shanghai Yise Medical Technology Co., Ltd.). The relative light units (RLU) were then normalized to the total μg of protein assayed. To convert RLU into μg of luciferase, a standard curve was generated using QuantiL μM recombinant luciferase (Promega).
[0241] FLuc mRNA (L - 6107) from Trilink Biotechnologies will express the luciferase protein, which was originally isolated from the firefly (Photinus pyralis). Fluc is commonly used in mammalian cell cultures to measure gene expression and cell viability. It emits bioluminescence in the presence of the substrate luciferin. This capped and polyadenylated mRNA is completely substituted with 5 - methylcytidine and pseudouridine.
[0242] Example 28
[0243] Determination of the pKa of the formulated lipids
[0244] The pKa of the formulated cationic lipid is related to the efficacy of the LNP used for nucleic acid delivery. The preferred pKa range is 5 - 7. The pKa of each cationic lipid is determined in lipid nanoparticles using an assay based on the fluorescence of 2-(p-toluidino)-6-naphthalenesulfonic acid (TNS). As described in Example 27, an ordered method is used to prepare lipid nanoparticles containing cationic lipid / DSPC / cholesterol / PEG lipid (50 / 10 / 38 / 2 mol%) at a total lipid concentration of 0.4 mM in PBS. TNS is prepared as a 100 μM stock solution in distilled water. The vesicles are diluted to contain 24 μM lipid in 2 mL of buffer solution containing 10 mM HEPES, 10 mM MES, 10 mM ammonium acetate, and 130 mM NaCl, where the pH ranges from 2.5 to 11. Equal aliquots of the TNS solution are added to give a final concentration of 1 μM, and after vortex mixing, the fluorescence intensity is measured in an SLM Aminco Series 2 luminescence spectrophotometer at excitation and emission wavelengths of 321 nm and 445 nm at room temperature. A sigmoidal best-fit analysis is applied to the fluorescence data, and the pKa is measured as the pH that gives half-maximal fluorescence intensity.
[0245] Example 29
[0246] The efficacy of lipid nanoparticle formulations containing various cationic lipids was determined using a rodent model of in vivo luciferase mRNA expression.
[0247] For comparison purposes, these lipids were also used to formulate lipid nanoparticles containing FLuc mRNA (L-6107) using the ordered mixing method as described in Example 27. Lipid nanoparticles were formulated using the following molar ratios: 50% cationic lipid / 10% distearoylphosphatidylcholine (DSPC) / 38% cholesterol / 2% PEG lipid ("PEG-DMG", i.e., (1-(monomethoxy-polyethylene glycol)-2,3-dimyristoyl glycerol, average PEG molecular weight of 2000). As described in Example 27, the relative activity was determined by measuring luciferase expression in the liver 5 hours after intravenous tail vein injection. The activity was compared at doses of 0.3 and 1.0 mg mRNA / kg and expressed as ng luciferase / g liver measured 5 hours after use as described in Example 27. The results of Examples 28 and 29 are shown in Table 2.
[0248] Table 2 Comparison of lipids showing activity with mRNA
[0249]
[0250]
[0251]
[0252]
[0253] The technical features of the above-described embodiments can be combined arbitrarily. For the sake of brevity of description, not all possible combinations of the technical features in the above-described embodiments are described. However, as long as there is no contradiction in the combination of these technical features, it should be considered as falling within the scope described in this specification.
[0254] The above-described embodiments only represent several implementation manners of the present invention, and the description thereof is relatively specific and detailed. However, it should not be construed as a limitation to the scope of the disclosed patent. It should be noted that for those of ordinary skill in the art, without departing from the concept of the present invention, several modifications and improvements can still be made, and these all belong to the protection scope of the present invention. Therefore, the protection scope of the present invention patent shall be subject to the appended claims.
Claims
1. A cationic lipid compound, which is a compound having one of the following structures: Compound 10: Compound 11: Compound 21: Compound 26:
2. A composition comprising the compound according to claim 1 and a therapeutic agent and / or a prophylactic agent.
3. The composition according to claim 2, which further comprises one or more excipients selected from neutral lipids, steroids, and polymer-conjugated lipids.
4. The composition according to claim 3, wherein the neutral lipid is selected from one or more of the following mixtures: 1,2-distearoyl-sn-glycero-3-phosphocholine, 1,2-dipalmitoyl-sn-glycero-3-phosphocholine, 1,2-dimyristoyl-sn-glycero-phosphocholine, 1,2-dioleoyl-sn-glycero-3-phosphocholine, 1-palmitoyl-2-oleoyl-sn-glycero-3-phosphocholine, 1,2-dioleoyl-sn-glycero-3-phosphoethanolamine, and sphingomyelin.
5. The composition according to claim 4, wherein the neutral lipid is 1,2-distearoyl-sn-glycero-3-phosphocholine.
6. The composition according to claim 3, wherein the steroid is selected from one or more of the following mixtures: cholesterol, coprosterol, sitosterol, ergosterol, campesterol, stigmasterol, brassicasterol, tomatine, ursolic acid, α-tocopherol.
7. The composition according to claim 6, wherein the steroid is cholesterol.
8. The composition according to claim 3, wherein the polymer-conjugated lipid is a polyethylene glycolated lipid.
9. The composition according to claim 8, wherein the polyethylene glycolated lipid is 1,2-dimyristoyl-sn-glycero-methoxypolyethylene glycol.
10. The composition according to any one of claims 2-9, wherein the therapeutic agent and / or the prophylactic agent is a vaccine or a compound capable of eliciting an immune response.
11. The composition according to claim 10, wherein the therapeutic agent and / or the prophylactic agent is a nucleic acid.
12. The composition according to claim 11, wherein the nucleic acid is selected from one or more of the following mixtures: siRNA, aiRNA, miRNA, dsRNA, shRNA, mRNA.
13. The composition according to claim 12, wherein the nucleic acid is mRNA.
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